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Cited 2 time in webofscience Cited 3 time in scopus
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Graphene quantum dots induced porous orientation of holey graphene nanosheets for improved electrocatalytic activity

Authors
Ali, MumtazRiaz, RabiaAnjum, Aima SameenSun, Kyung ChulLi, HuiJeong, Sung HoonKo, Min Jae
Issue Date
Jan-2021
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
Phase separation; Nitrogen doped graphene quantum dots; Antisolvent effect; Holey graphene oxide; Electrocatalysis; Counter-electrode
Citation
CARBON, v.171, pp.493 - 506
Indexed
SCIE
SCOPUS
Journal Title
CARBON
Volume
171
Start Page
493
End Page
506
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/1643
DOI
10.1016/j.carbon.2020.09.031
ISSN
0008-6223
Abstract
Complex electrolyte diffusion through the stacked graphene nanosheets limits their electrochemical performance. As a potential solution, this study explored the potential of nitrogen-doped graphene quantum dots (NGQDs) to induce 3D porous orientation of holey graphene oxide (hGO) nanosheets. The sizes of NGQDs and antisolvent for phase separation assisted assembly were optimized to achieve a 3D nanoporous network. This nano-network serves as a soft template for the porous orientation of hGO, forming a 3D hierarchically porous carbon architecture. Benefiting from the porosity of the 3D framework, pi-pi restacking was radically avoided, providing high electrolyte transport rates. In addition, doped nitrogen and J-type aggregation of NGQDs effectively tuned the band structure to realize charge transfer at low overpotential. The enhanced electrocatalytic activity and exceptionally low charge transfer resistance of the composite structure were attributed to the enhanced electrode/electrolyte interface and multidimensional charge & electrolyte transport. Porous composite structure based counter electrode showed 78% enhanced photovoltaic performance (compared to unmodified graphene) in the dye-sensitized solar cell, which is comparable to the performance of Pt electrode. The proposed 3D porous orientation can be utilized in emerging electrocatalytic applications, such as supercapacitors, water splitting, and battery electrodes.
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서울 공과대학 > 서울 화학공학과 > 1. Journal Articles
서울 공과대학 > 서울 유기나노공학과 > 1. Journal Articles

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